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MATERIALS SCIENCE
ArticleName Parameters of 198 tetratectic points of four-phase equilibria of 46 binary metal systems
DOI 10.17580/tsm.2026.05.05
ArticleAuthor Levinsky Yu. V., Vershinina Е. V.
ArticleAuthorData

Independent expert, Honored Scientist of the Russian Federation, Moscow, Russia

Yu. V. Levinsky, Professor, Doctor of Technical Sciences, levinsky35@mail.ru

 

D. Mendeleev University of Chemical Technology of Russia, Moscow, Russia

Е. V. Vershinina, Associate Professor, Candidate of Technical Sciences, kaver@yandex.ru

Abstract

The state diagrams of binary systems in the temperature-composition coordinates, widely used in metal science and manufacturing, do not take into account the pressure factor, whereas the latter has a significant impact on the thermodynamics and kinetics of technological processes, properties and quality of the final product. For a more accurate understanding and forecasting of the process of alloys production and operation, it is necessary to take into account the pressure factor, i.e. to consider the behavior of the system in the “temperature – pressure – composition” coordinates. Adding another parameter transforms the two-dimensional state diagram into the three-dimensional one and increases the maximum number of phases in equilibrium for a two-component system to four. Three-dimensional p – T – x diagrams are not used in practice due to the complexity of their interpretation but they allow to represent the behavior of  the system in “temperature-pressure” coordinates, as well as depict various isobaric and isothermal sections. The article discusses the principles and rules for constructing the state diagrams of systems in coordinates p – T, as well as isobaric and isothermal sections. The state diagrams in the “temperature – pressure” coordinates, isobaric and isothermal sections are constructed for the two-component Co – Zn system, and the tetratectic parameters are determined, i.e. the values of temperature, pressure, and composition for the four-phase equilibria present in the system. Based on the studies of p – T – x diagrams of binary systems previously performed by one of the authors of this article, the temperature-barometric coordinates, as well as the compositions of 198 tetratectic points for 46 binary metal systems, have been determined. These results can be useful for industrial technologists and researchers in the field of materials science.

keywords p – T – x state diagrams, reactions with a gas phase, isobaric cross section, isothermal cross section, p – T state diagrams, Co – Zn system, tetratectics of binary metallic systems
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